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SeminarPast EventNeuroscience

Epigenetic rewiring in Schinzel-Giedion syndrome

Alessandro Sessa, PhD

San Raffaele Scientific Institute, Milan (Italy), Stem Cell & Neurogenesis Unit

Schedule
Wednesday, May 3, 2023

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Schedule

Wednesday, May 3, 2023

7:00 PM Europe/Berlin

Host: Neuroepigenetics Series

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Event Information

Domain

Neuroscience

Original Event

View source

Host

Neuroepigenetics Series

Duration

60 minutes

Abstract

During life, a variety of specialized cells arise to grant the right and timely corrected functions of tissues and organs. Regulation of chromatin in defining specialized genomic regions (e.g. enhancers) plays a key role in developmental transitions from progenitors into cell lineages. These enhancers, properly topologically positioned in 3D space, ultimately guide the transcriptional programs. It is becoming clear that several pathologies converge in differential enhancer usage with respect to physiological situations. However, why some regulatory regions are physiologically preferred, while some others can emerge in certain conditions, including other fate decisions or diseases, remains obscure. Schinzel-Giedion syndrome (SGS) is a rare disease with symptoms such as severe developmental delay, congenital malformations, progressive brain atrophy, intractable seizures, and infantile death. SGS is caused by mutations in the SETBP1 gene that results in its accumulation further leading to the downstream accumulation of SET. The oncoprotein SET has been found as part of the histone chaperone complex INHAT that blocks the activity of histone acetyltransferases suggesting that SGS may (i) represent a natural model of alternative chromatin regulation and (ii) offer chances to study downstream (mal)adaptive mechanisms. I will present our work on the characterization of SGS in appropriate experimental models including iPSC-derived cultures and mouse.

Topics

SETBP1Schinzel-Giedion syndromebrain atrophybrain developmentchromatin regulationdevelopmental delayenhancerenhancershistone acetyltransferasesiPSC-derived culturesneuroepigeneticsseizures

About the Speaker

Alessandro Sessa, PhD

San Raffaele Scientific Institute, Milan (Italy), Stem Cell & Neurogenesis Unit

Contact & Resources

@aleparziale

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twitter.com/aleparziale

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